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AI-Native Educational Video Production: A Practitioner-Derived Methodology for Cognitively Grounded Instructional Media

May 16, 2026 · 1 author · 3 topics

This whitepaper presents a practitioner-derived methodology for the production of AI-generated educational video in language acquisition and executive capability development contexts. The methodology integrates cognitive load theory (Sweller, 1988), multimedia learning principles (Mayer, 2009), second language acquisition constraints (Krashen, 1985; Swain, 1985), and cinematic direction logic into a unified production grammar for AI-native instructional media. A human-in-the-loop governance principle positions AI as a precision instrument operating within practitioner-defined constraints rather than as an autonomous content generator. The methodology emerged from operational practice across eighteen lesson videos for the Meet & Greet© programme and the Literary English course system at Fit4Global Learning Systems®, São Paulo, Brazil. The central claim is that AI systems do not create pedagogical coherence — they amplify the coherence or incoherence of the upstream production system. The whitepaper documents the production grammar, narrative architecture, and cognitive experience system that constitute the methodology, and identifies the innovation as the integration of four fields not previously synthesized into a single instructional media production framework.

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Sandra Mônica Szwarc
Visual and Cognitive Learning ProcessesNeuroscience, Education and Cognitive FunctionEducational Games and Gamification
PublishedMay 16, 2026
TypeArticle
Citations0

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